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Visibility Enhancer: Adaptable for Distorted Traffic Scenes by Dusty Weather

机译:可视性增强器:适用于多尘天气下的变形交通场景

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Poor weather conditions such as the presence of heavy snow, fog, rain and dust storm are considered as dangerous restrictions of the functionality of cameras via reducing clear visibility. Thus, they have bad effect on computer vision algorithms used in traffic scene understanding, such as object detection, tracking, and recognition which are vital for traffic monitoring. Current methods for image enhancement can not be utilized under the influence of weather variability from foggy to dusty situations. This paper proposes an adaptive technique for visibility enhancement based on the bright balance and Laplace filtering. The overall visibility enhancement process is composed of three main parts: color and illumination improvement, reflection and component details enhancement, and linear weighted fusion. First, the contrast of an image is enhanced by auto white balance and Gamma correction for each color channel (Red, Green, Blue) individually to achieve color enhancement and outperform the illumination. Second, the detail enhancement is achieved by the Laplace pyramid filter to process the reflection component. Third, the detail enhanced layer is added back to the corrected color layer to reconstruct the clear image. The quantitative results and visual analysis demonstrate the efficacy of the proposed technique. Comparing with the state-of-the-art image enhancement methods, the evaluation of the objective metrics have shown that the contrast of unclear images can be effectively improved by the proposed method and with well effects on both foggy and dusty situations.
机译:恶劣的天气条件(例如大雪,大雾,大雨和沙尘暴的存在)被认为会降低清晰可见度,这是照相机功能的危险限制。因此,它们对交通场景理解中使用的计算机视觉算法(例如对交通监控至关重要的对象检测,跟踪和识别)产生不良影响。在从有雾到多尘的天气变化的影响下,不能使用当前的图像增强方法。本文提出了一种基于亮度平衡和拉普拉斯滤波的自适应技术,以提高可视性。整个可见性增强过程包括三个主要部分:颜色和照明增强,反射和组件细节增强以及线性加权融合。首先,通过针对每个色彩通道(红色,绿色,蓝色)的自动白平衡和伽玛校正分别增强图像的对比度,以实现色彩增强并胜过照明。其次,通过拉普拉斯金字塔滤镜来处理反射分量,可以实现细节增强。第三,将细节增强层添加回校正后的颜色层,以重建清晰图像。定量结果和视觉分析证明了所提出技术的有效性。与最新的图像增强方法相比,对客观指标的评估表明,所提出的方法可以有效地改善模糊图像的对比度,并且在有雾和多尘的情况下均具有良好的效果。

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